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5,879 results for “Curculionidae”
Fig. 1 in Phenological stages of a soybean crop affect the number of mating pairs and egg load in Rhyssomatus nigerrimus (Coleoptera: Curculionidae) females under natural conditions
Fig. 1. Effect of soybean crop phenological stages on matings per linear meter of Rhyssomatus nigerrimus pairs.Estimated values are 95% confidence intervals ±SE.
Fig. 2 in Phenological stages of a soybean crop affect the number of mating pairs and egg load in Rhyssomatus nigerrimus (Coleoptera: Curculionidae) females under natural conditions
Fig. 2. Effect of time of day on matings per linear meter of Rhyssomatus nigerrimus copulating in the R7 phenological stage in a soybean crop. Estimated values are 95% confidence intervals ±SE.
Fig. 2 in A modelling approach to describe the Anthonomus eugenii (Coleoptera: Curculionidae) life cycle in plant protection: a priori and a posteriori analysis
Fig. 2. Simulation output from the model (1) evaluating the daily average temperature with the Logan development rate function.
Fig. 1 in A modelling approach to describe the Anthonomus eugenii (Coleoptera: Curculionidae) life cycle in plant protection: a priori and a posteriori analysis
Fig. 1. Simulation output from the model (1) evaluating the daily average temperature with the Briére development rate function.
Fig. 3 in A modelling approach to describe the Anthonomus eugenii (Coleoptera: Curculionidae) life cycle in plant protection: a priori and a posteriori analysis
Fig. 3. Briére development rate function compared with life tables point from Toapanta et al. (2005).
Fig. 1 in Spatial distribution of Listroderes costirostris and Hypera postica (Curculionidae: Cyclominae, Hyperinae) on a celery crop in Mexico's Northwest Region
Fig. 1. Weevil species collected on Apium graveolens in Baja California, Mexico: (A) Hypera postica and (B) Listroderes costirostris.
Fig. 1 in Undescribed color polymorphism of the Asiatic palm weevil, Rhynchophorus vulneratus Panzer (Coleoptera: Curculionidae) in Indonesia: biodiversity study based on COI gene
Fig. 1. Genealogical relationship of 105 sequence haplotypes of palm weevils collected from Indonesia and Rhynchophorus ferrugineus from Saudi Arabia and Pakistan based on the cytochrome oxidase subunit I (COI) gene (657 bp) using the neighbor joining method with 1,000 bootstraps. The colors indicate the palm weevil color morphs or species: - Asiatic palm weevil with rusty red morphs (APW–RR); - Asiatic red palm weevil with red stripe morphs (APW–RS); - Asiatic palm weevil with intermediate color between rusty red and red stripe morphs (APW–I); - black palm weevil (BPW as an outgroup); and - red palm weevil, R. ferrugineus (RPW). The numbers at the branching points indicate the bootstrap values. CA = Lineage A, CB = Lineage B, CC = Lineage C, SCA = Sub-cluster A, SCB = Sub-cluster B.
Рис. 7–15. Lixus pulverulentus, груΔные и брюшные сегменты, хетотаксия. 7, 10, 13 – груΔные сегменты; 8, 11, 14 – брюшной сегмент I; 9, 12, 15 – брюшные сегменты VII–X; 7–9 – виΔ сбоку; 10–12 – виΔ сверху; 13–15 – виΔ снизу. Figs 7–15. Lixus pulverulentus, thoracal and abdominal segments, and chaetotaxy. 7, 10, 13 – thoracal segments; 8, 11, 14 – abdominal segment I; 9, 12, 15 –abdominal segments VII–X; 7–9 – lateral view; 10–12 – dorsal view; 13–15 – ventral view. Setae: dls – dorsolateral, dpls – dorsopleurolateral, ds – dorsal, ls – lateral, lsts – laterosternal, msts – mesosternal, pda – pedal, pds – postdorsal, prns – pronotal, prs – prodorsal, ss – spirarulum, sts – sterna, ts – terminal, vpls – ventropleural. in Description of the preimaginal stages and biology of the weevil Lixus (Dilixellus) pulverulentus (Scopoli, 1763) (Coleoptera: Curculionidae: Lixini)
Рис. 7–15. Lixus pulverulentus, груΔные и брюшные сегменты, хетотаксия. 7, 10, 13 – груΔные сегменты; 8, 11, 14 – брюшной сегмент I; 9, 12, 15 – брюшные сегменты VII–X; 7–9 – виΔ сбоку; 10–12 – виΔ сверху; 13–15 – виΔ снизу. Figs 7–15. Lixus pulverulentus, thoracal and abdominal segments, and chaetotaxy. 7, 10, 13 – thoracal segments; 8, 11, 14 – abdominal segment I; 9, 12, 15 –abdominal segments VII–X; 7–9 – lateral view; 10–12 – dorsal view; 13–15 – ventral view. Setae: dls – dorsolateral, dpls – dorsopleurolateral, ds – dorsal, ls – lateral, lsts – laterosternal, msts – mesosternal, pda – pedal, pds – postdorsal, prns – pronotal, prs – prodorsal, ss – spirarulum, sts – sterna, ts – terminal, vpls – ventropleural.
Рис. 21–32. Lixus pulverulentus, кукоΛка, внешний виΔ и хетотаксия. 21 – виΔ снизу; 22 – виΔ сверху; 23 – виΔ сбоку; 24 – хетотаксия гоΛовы; 25 – хетотаксия переΔнеспинки; 26 – хетотаксия среΔнеспинки; 27 – хетотаксия заΔнеспинки; 28 – хетотаксия брюшного сегмента I; 29 – хетотаксия брюшного сегмента II; 30 – хетотаксия брюшного сегмента VII; 31 – хетотаксия брюшного сегмента VIII; 32 –хетотаксия брюшного сегмента IX. Figs 21–32. Lixus pulverulentus, pupa, habitus and chaetotaxy. 21 – ventral view; 22 – dorsal view; 23 – lateral view; 24 – chaetotaxy of head; 25 – chaetotaxy of pronotum; 26 – chaetotaxy of mesonotum; 27 – chaetotaxy of metanotum; 28 – chaetotaxy of abdominal segment I; 29 – chaetotaxy of abdominal segment II; 30 – chaetotaxy of abdominal segment VII; 31 – chaetotaxy of abdominal segment VIII; 32 – chaetotaxy of abdominal segment IX. ps – pseudocerci, Th n –thoracic segments, Ab n –abdominal segments; setae: as – apical, d – dorsal, ds – discal, fs – femoral, ls – lateral, os – orbital, pas – postatennal, pls – posterolateral, rs – rostral, sos – super-orbital, sls – superlateral, v – ventral, vs – vertical. in Description of the preimaginal stages and biology of the weevil Lixus (Dilixellus) pulverulentus (Scopoli, 1763) (Coleoptera: Curculionidae: Lixini)
Рис. 21–32. Lixus pulverulentus, кукоΛка, внешний виΔ и хетотаксия. 21 – виΔ снизу; 22 – виΔ сверху; 23 – виΔ сбоку; 24 – хетотаксия гоΛовы; 25 – хетотаксия переΔнеспинки; 26 – хетотаксия среΔнеспинки; 27 – хетотаксия заΔнеспинки; 28 – хетотаксия брюшного сегмента I; 29 – хетотаксия брюшного сегмента II; 30 – хетотаксия брюшного сегмента VII; 31 – хетотаксия брюшного сегмента VIII; 32 –хетотаксия брюшного сегмента IX. Figs 21–32. Lixus pulverulentus, pupa, habitus and chaetotaxy. 21 – ventral view; 22 – dorsal view; 23 – lateral view; 24 – chaetotaxy of head; 25 – chaetotaxy of pronotum; 26 – chaetotaxy of mesonotum; 27 – chaetotaxy of metanotum; 28 – chaetotaxy of abdominal segment I; 29 – chaetotaxy of abdominal segment II; 30 – chaetotaxy of abdominal segment VII; 31 – chaetotaxy of abdominal segment VIII; 32 – chaetotaxy of abdominal segment IX. ps – pseudocerci, Th n –thoracic segments, Ab n –abdominal segments; setae: as – apical, d – dorsal, ds – discal, fs – femoral, ls – lateral, os – orbital, pas – postatennal, pls – posterolateral, rs – rostral, sos – super-orbital, sls – superlateral, v – ventral, vs – vertical.
Рис. 1–6. Lixus pulverulentus. 1 – биотоп, ассоциация Cirsium acanthoides; 2 – Λичинка внутри стебΛя кормового растения; 3 – моΛоÃой жук внутри стебΛя кормового растения; 4 – гоΛова Λичинки; 5 – внешний виà Λичинки; 6 – внешний виà кукоΛки. Figs 1–6. Lixus pulverulentus. 1 – biotope, Cirsium acantoides association; 2 – larva within the stalk of the host plant; 3 – young beetle inside the stalk of the host plant; 4 – head of the larva; 5 – habitus of the larva; 6 – habitus of the pupa. in Description of the preimaginal stages and biology of the weevil Lixus (Dilixellus) pulverulentus (Scopoli, 1763) (Coleoptera: Curculionidae: Lixini)
Рис. 1–6. Lixus pulverulentus. 1 – биотоп, ассоциация Cirsium acanthoides; 2 – Λичинка внутри стебΛя кормового растения; 3 – моΛоÃой жук внутри стебΛя кормового растения; 4 – гоΛова Λичинки; 5 – внешний виà Λичинки; 6 – внешний виà кукоΛки. Figs 1–6. Lixus pulverulentus. 1 – biotope, Cirsium acantoides association; 2 – larva within the stalk of the host plant; 3 – young beetle inside the stalk of the host plant; 4 – head of the larva; 5 – habitus of the larva; 6 – habitus of the pupa.
Рис. 16–20. Lixus pulverulentus, гоΛова Λичинки и ротовые органы. 16 – виΔ сверху; 17 – усик; 18 – максиΛΛоΛабиаΛьный компΛекс; 19 – Λабрум и кΛипеус; 20 – эпифаринкс. Figs 16–20. Lixus pulverulentus, larval head and mouth parts. 16 – dorsal view; 17 – antenna; 18 – maxillolabial complex; 19 – labrum and clypeus; 20 – epipharynx. at – antenna, cl – clypeus, stp – stipes, ma – mala, plb – praelabium, plsb – postlabium; setae: als – anteriolateral, ams – anteriomedial, cls – clypeal, des – dorsal epicranial, dms – dorsal marar, fs – frontal, les – lateral epicranial, mbs – malabasiventral, mds – mandibular dorsal, mes – median, pfs – palpiferal, pslbs – postlabial, vms – ventral malar. in Description of the preimaginal stages and biology of the weevil Lixus (Dilixellus) pulverulentus (Scopoli, 1763) (Coleoptera: Curculionidae: Lixini)
Рис. 16–20. Lixus pulverulentus, гоΛова Λичинки и ротовые органы. 16 – виΔ сверху; 17 – усик; 18 – максиΛΛоΛабиаΛьный компΛекс; 19 – Λабрум и кΛипеус; 20 – эпифаринкс. Figs 16–20. Lixus pulverulentus, larval head and mouth parts. 16 – dorsal view; 17 – antenna; 18 – maxillolabial complex; 19 – labrum and clypeus; 20 – epipharynx. at – antenna, cl – clypeus, stp – stipes, ma – mala, plb – praelabium, plsb – postlabium; setae: als – anteriolateral, ams – anteriomedial, cls – clypeal, des – dorsal epicranial, dms – dorsal marar, fs – frontal, les – lateral epicranial, mbs – malabasiventral, mds – mandibular dorsal, mes – median, pfs – palpiferal, pslbs – postlabial, vms – ventral malar.
Figure 1 in Response of Hypothenemus hampei Ferrari (Coleoptera: Curculionidae: Scolytinae) parasitized by the nematode Metaparasitylenchus hypothenemi Poinar (Tylenchida: Allantonematidae) to different colors of light
Figure 1: Relative attraction of CBB (parasitized with MetaparaSityleNChUS hypOtheNeMi and non-parasitized) to 14 light wavelengths compared to the control (570 nm). The asterisk-labeled treatment was statistically different to the control using the χ2 test (P = 0.01). Relative attraction (%) was calculated using the number of borers that chose the treatment and control, applying the formula: [(treatment) (100) / (treatment + control)].
Fig. 1 in Acrotomopus atropunctellus (Coleoptera: Curculionidae) preference for large sugarcane shoots mitigates damage to sugarcane crop
Fig. 1. Mean numbers (± SE) of feeding punctures made by Acrotomopus atropunctellus on sugarcane shoots of different sizes. Different letters represent significant differences between means (P <0.05) (Fisher's LSD test).
FIGURE 5 in New Curculioninae (Coleoptera: Curculionidae) in Dominican amber
FIGURE 5. Lateral view of Paratype Anthonomus cruraluma sp. nov. in Dominican amber. Bar equals 0.500 mm.
FIGURE 3 in New Curculioninae (Coleoptera: Curculionidae) in Dominican amber
FIGURE 3. Lateral view of Holotype Anthonomus cruraluma sp. nov. in Dominican amber. Bar equals 0.730 mm.
FIGURE 4 in New Curculioninae (Coleoptera: Curculionidae) in Dominican amber
FIGURE 4. Dorsal view of Holotype Anthonomus cruraluma sp. nov. in Dominican amber. Bar equals 0.780 mm.
FIGURE 13 in Five new species from the subfamily Entiminae (Coleoptera: Curculionidae) in Dominican amber
FIGURE 13. Lateral view of Promecops (Promecodes) divarichela n. sp. in Dominican amber. Scale bar equals 0.7 mm.
FIGURE 6 in Five new species from the subfamily Entiminae (Coleoptera: Curculionidae) in Dominican amber
FIGURE 6. Lateral view of protibiae of Lachnopus serraticrus n. sp. in Dominican amber. Scale bar equals 0.4 mm.
FIGURE 9 in Five new species from the subfamily Entiminae (Coleoptera: Curculionidae) in Dominican amber
FIGURE 9. Lateral view of apex of metatibia of Apodrosus tinctocorpus n. sp. in Dominican amber. Scale bar equals 0.2 mm.
FIGURE 3 in Five new species from the subfamily Entiminae (Coleoptera: Curculionidae) in Dominican amber
FIGURE 3. Drawing of pronotum and elytra of Lachnopus serraticrus n. sp. in dorsal view. Scale bar equals 1.4 mm.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.